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RESEARCH PRODUCT
Palladium-catalyzed heteroaryl thioethers synthesis overcoming palladium dithiolate resting states inertness: Practical road to sulfones and NH-sulfoximines
Jean-cyrille HiersoJean-cyrille HiersoJohan GuilbaudMarine LabondeHélène CatteyMajed KammounJulien RogerNadine PirioAwatef SelmiAwatef Selmisubject
bond formationarenessulfideschemistry.chemical_element010402 general chemistry01 natural sciencesCatalysisefficientCatalysischemistry.chemical_compounds-arylation[CHIM]Chemical SciencesReactivity (chemistry)SulfonesResting statethiols[PHYS]Physics [physics]010405 organic chemistryProcess Chemistry and TechnologyGeneral Chemistryindolesacid saltsCombinatorial chemistry0104 chemical sciencesThiolatesC-S couplingchemistryFerroceneNH-sulfoximinesReagentElectrophileFunctional groupH functionalizationdirecting groupPalladiumStoichiometryPalladiumdescription
International audience; We provide efficient synthetic access to heteroaryl sulfones in two-steps using a simple palladium-1,1'-bis [(diphenyl)phosphanyl]ferrocene catalyst to form in high yields variously functionalized heteroaromatic thioethers. Pyridinyl-containing substrates can be subsequently selectively oxidized into sulfones and NH-sulfoximines by using very mild oxidation conditions with a high functional group tolerance. In the palladium catalyzed C-S coupling of heteroaromatic thiols, reactivity limitation is attached with electron-deficient thiols. We show that this limitation can be resolved by the successful use of 2-bromoheteroarenes in the C-S coupling. We established herein that this choice of heteroaryl electrophilic reagent in palladium-catalyzed C-S bond formation allows overcoming palladium dithiolate out-of-cycle resting state inertness. This was illustrated in the stoichiometric reactivity study of the palladium dithiolate formed from 4-trifluoromethylbenzen-1-thiol-isolated and characterized by multinuclear NMR and XRD-with both 2-chloropyridine and 2-bromopyridine.
year | journal | country | edition | language |
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2018-06-01 | Catalysis Communications |